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Published on: May 4, 2015
Targeting the inflammatory response in healing myocardial infarcts
1Section of Cardiovascular Sciences, Baylor College of Medicine, Houston TX 77030, USA. ngf@bcm.tmc.edu
Insights
Myocardial infarct healing involves inflammation, cell clearance, and scar formation. Understanding these processes, including molecular targets, is key for therapeutic interventions in heart attack patients.
Area of Science:
- Cardiovascular Biology
- Immunology
- Wound Healing
Background:
- Myocardial infarct healing is an inflammatory process crucial for scar formation.
- Myocardial necrosis triggers pathways like complement, NF-kappaB, and TLRs, initiating inflammation.
Purpose of the Study:
- To elucidate the mechanisms regulating post-infarction inflammatory response.
- To identify molecular targets for therapeutic intervention in myocardial infarction.
Main Methods:
- The study reviews the inflammatory cascade, cellular recruitment, matrix formation, and tissue remodeling post-myocardial infarction.
- Key molecular pathways and signaling molecules involved in infarct healing are analyzed.
Main Results:
- Inflammation involves chemokines, cytokines, neutrophils, and mononuclear cells.
- A provisional matrix facilitates cell migration, leading to granulation tissue formation.
- TGF-beta and IL-10 are critical for resolving inflammation and promoting scar deposition.
- The mature scar consists of dense collagen with reduced cellularity and regressed neovessels.
Conclusions:
- Infarct healing involves a complex inflammatory cascade and matrix remodeling.
- Understanding these mechanisms is vital for improving ventricular remodeling and patient prognosis after myocardial infarction.
Abstract:
Healing of myocardial infarcts depends on an inflammatory cascade that ultimately results in clearance of dead cells and matrix debris and formation of a scar. Myocardial necrosis activates complement, Nuclear Factor (NF)-kappaB and Toll-like Receptor (TLR)-dependent pathways, and generates free radicals, triggering an inflammatory response. Chemokines and cytokines are markedly induced in the infarct and mediate recruitment and activation of neutrophils and mononuclear cells. Extravasation of platelets and plasma proteins, such as fibrinogen and fibronectin, results in formation of a clot, consisting of platelets embedded in a mesh of crosslinked fibrin. This provisional matrix provides a scaffold for migration of cells into the infarct. Monocytes differentiate into macrophages and secrete fibrogenic and angiogenic growth factors inducing formation of granulation tissue, containing myofibroblasts and neovessels. Repression of proinflammatory cytokine and chemokine synthesis, mediated in part through Transforming Growth Factor (TGF)-beta and Interleukin (IL)-10, is critical for resolution of the inflammatory infiltrate and transition to fibrous tissue deposition. Infarct myofibroblasts deposit extracellular matrix proteins and a collagen-based scar is formed. As the wound matures, fibroblasts undergo apoptosis and neovessels regress, resulting in formation of a scar with a low cellular content containing dense, cross-linked collagen. The pathologic and structural changes associated with infarct healing directly influence ventricular remodeling and affect prognosis in patients with myocardial infarction. Understanding the mechanisms involved in the regulation of the post-infarction inflammatory response, and the spatial and temporal parameters of wound healing is necessary in order to identify specific molecular targets for therapeutic intervention.
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